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异丙基丙烯酰胺五聚体相邻水分子的结构动力学

Structural Dynamics of Neighboring Water Molecules of -Isopropylacrylamide Pentamer.

作者信息

Custodio Kenee Kaiser S, Claudio Gil C, Nellas Ricky B

机构信息

Institute of Chemistry, University of the Philippines Diliman, Quezon City 1101, Philippines.

出版信息

ACS Omega. 2020 Jan 10;5(3):1408-1413. doi: 10.1021/acsomega.9b02898. eCollection 2020 Jan 28.

Abstract

Poly(-isopropylacrylamide) (PNIPAM) is a popular polymer widely used in smart hydrogel synthesis due to its thermo-responsive behavior in aqueous medium. Aqueous PNIPAM hydrogels can reversibly swell and collapse below and above their lower critical solution temperature (LCST), respectively. The present work used molecular dynamics simulations to explore the behavior of water molecules surrounding the side chains of a NIPAM pentamer in response to temperature changes (273-353 K range) near its experimental LCST (305 K). Results suggest a strong inverse correlation of temperature with water density and hydrophobic hydration character of the first coordination shell around the isopropyl groups. Integrity of the first and second coordination shells is further characterized by polygon ring analysis. Predominant occurrence of pentagons suggests clathrate-like behavior of both shells at lower temperatures. This predominance is eventually overtaken by 4-membered rings as temperature is increased beyond 303 and 293 K for the first and second coordination shells, respectively, losing their clathrate-like property. It is surmised that this temperature-dependent stability of the coordination shells is one of the important factors that controls the reversible swell-collapse mechanism of PNIPAM hydrogels.

摘要

聚(N-异丙基丙烯酰胺)(PNIPAM)是一种广受欢迎的聚合物,因其在水性介质中的热响应行为而被广泛用于智能水凝胶的合成。水性PNIPAM水凝胶在其低临界溶液温度(LCST)以下和以上时,可分别可逆地溶胀和塌陷。本研究利用分子动力学模拟,探究了在接近其实验LCST(305K)的温度变化(273 - 353K范围)下,NIPAM五聚体侧链周围水分子的行为。结果表明,温度与异丙基周围第一配位层的水密度和疏水水合特性呈强烈的负相关。通过多边形环分析进一步表征了第一和第二配位层的完整性。五边形的大量出现表明在较低温度下两个配位层都具有笼形行为。当温度分别超过第一和第二配位层的303K和293K时,这种优势最终被四元环取代,它们失去了笼形性质。据推测,配位层这种随温度变化的稳定性是控制PNIPAM水凝胶可逆溶胀-塌陷机制的重要因素之一。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4458/6990436/2944dca17462/ao9b02898_0001.jpg

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